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NP-Completeness
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Outline and Reading
P and NP (§13.1)



Definition of P
Definition of NP
Alternate definition of NP
NP-completeness (§13.2)


Definition of NP-hard and NP-complete
The Cook-Levin Theorem
NP-Completeness
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Running Time Revisited
Input size, n

To be exact, let n denote the number of bits in a nonunary
encoding of the input
All the polynomial-time algorithms studied so far in this
course run in polynomial time using this definition of
input size.

Exception: any pseudo-polynomial time algorithm
SFO
PVD
ORD
LGA
HNL
LAX
DFW
NP-Completeness
MIA
3
Dealing with Hard Problems
What to do when we find a problem
that looks hard…
I couldn’t find a polynomial-time algorithm;
I guess I’m too dumb.
NP-Completeness
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Dealing with Hard Problems
Sometimes we can prove a strong lower
bound… (but not usually)
I couldn’t find a polynomial-time algorithm,
because no such algorithm exists!
NP-Completeness
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Dealing with Hard Problems
NP-completeness let’s us show
collectively that a problem is hard.
I couldn’t find a polynomial-time algorithm,
but neither could all these other smart people.
NP-Completeness
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Polynomial-Time
Decision Problems
To simplify the notion of “hardness,” we will
focus on the following:


Polynomial-time as the cut-off for efficiency
Decision problems: output is 1 or 0 (“yes” or “no”)
 Examples:
 Does a given graph G have an Euler tour?
 Does a text T contain a pattern P?
 Does an instance of 0/1 Knapsack have a solution with
benefit at least K?
 Does a graph G have an MST with weight at most K?
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Problems and Languages
A language L is a set of strings defined over some
alphabet Σ
Every decision algorithm A defines a language L


L is the set consisting of every string x such that A outputs
“yes” on input x.
We say “A accepts x’’ in this case
 Example:
 If A determines whether or not a given graph G has an
Euler tour, then the language L for A is all graphs with
Euler tours.
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The Complexity Class P
A complexity class is a collection of languages
P is the complexity class consisting of all languages
that are accepted by polynomial-time algorithms
For each language L in P there is a polynomial-time
decision algorithm A for L.


If n=|x|, for x in L, then A runs in p(n) time on input x.
The function p(n) is some polynomial
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The Complexity Class NP
We say that an algorithm is non-deterministic if it
uses the following operation:


Choose(b): chooses a bit b
Can be used to choose an entire string y (with |y| choices)
We say that a non-deterministic algorithm A accepts
a string x if there exists some sequence of choose
operations that causes A to output “yes” on input x.
NP is the complexity class consisting of all languages
accepted by polynomial-time non-deterministic
algorithms.
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NP example
Problem: Decide if a graph has an MST of weight K
Algorithm:
1.
2.
3.
Non-deterministically choose a set T of n-1 edges
Test that T forms a spanning tree
Test that T has weight at most K
Analysis: Testing takes O(n+m) time, so this
algorithm runs in polynomial time.
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The Complexity Class NP
Alternate Definition
We say that an algorithm B verfies the acceptance
of a language L if and only if, for any x in L, there
exists a certificate y such that B outputs “yes” on
input (x,y).
NP is the complexity class consisting of all languages
verified by polynomial-time algorithms.
We know: P is a subset of NP.
Major open question: P=NP?
Most researchers believe that P and NP are different.
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NP example (2)
Problem: Decide if a graph has an MST of weight K
Verification Algorithm:
1.
2.
3.
Use as a certificate, y, a set T of n-1 edges
Test that T forms a spanning tree
Test that T has weight at most K
Analysis: Verification takes O(n+m) time, so this
algorithm runs in polynomial time.
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Equivalence of the
Two Definitions
Suppose A is a non-deterministic algorithm
Let y be a certificate consisting of all the outcomes of the
choose steps that A uses
We can create a verification algorithm that uses y instead of
A’s choose steps
If A accepts on x, then there is a certificate y that allows us to
verify this (namely, the choose steps A made)
If A runs in polynomial-time, so does this verification
algorithm
Suppose B is a verification algorithm
Non-deterministically choose a certificate y
Run B on y
If B runs in polynomial-time, so does this non-deterministic
algorithm
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An Interesting Problem
A Boolean circuit is a circuit of AND, OR, and NOT
gates; the CIRCUIT-SAT problem is to determine if
there is an assignment of 0’s and 1’s to a circuit’s
inputs so that the circuit outputs 1.
Inputs:
Logic Gates:
0
1
1
0
NOT
0
1
1
1
Output:
OR
1
1
0
0
1
AND
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CIRCUIT-SAT is in NP
Non-deterministically choose a set of inputs and the
outcome of every gate, then test each gate’s I/O.
Inputs:
Logic Gates:
0
1
1
0
NOT
0
1
1
1
Output:
OR
1
1
0
0
1
AND
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NP-Completeness
A problem (language) L is NP-hard if every
problem in NP can be reduced to L in
polynomial time.
That is, for each language M in NP, we can
take an input x for M, transform it in
polynomial time to an input x’ for L such that
x is in M if and only if x’ is in L.
L is NP-complete if it’s in NP and is NP-hard.
NP
poly-time
NP-Completeness
L
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Cook-Levin Theorem
CIRCUIT-SAT is NP-complete.

We already showed it is in NP.
To prove it is NP-hard, we have to show that every
language in NP can be reduced to it.



Let M be in NP, and let x be an input for M.
Let y be a certificate that allows us to verify membership in M in
polynomial time, p(n), by some algorithm D.
Let S be a circuit of size at most O(p(n)2) that simulates a
computer (details omitted…)
NP
M
poly-time
NP-Completeness
CIRCUIT-SAT
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Cook-Levin Proof
We can build a circuit that simulates the verification of x’s
membership in M using y.

Inputs

D
Let W be the working storage
for D (including registers,
such as program counter); let
D be given in RAM “machine < p(n) W
cells
code.”
Simulate p(n) steps of D by
replicating circuit S for each
y
step of D. Only input: y.
Circuit is satisfiable if and only
n x
if x is accepted by D with
some certificate y
Total size is still polynomial:
O(p(n)3).
NP-Completeness


D
D
W
W
S
Output
0/1
from D
S
y
y
x
x
p(n)
steps
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Some Thoughts
about P and NP
NP-complete
problems live here
NP
P
CIRCUIT-SAT
Belief: P is a proper subset of NP.
Implication: the NP-complete problems are the hardest in NP.
Why: Because if we could solve an NP-complete problem in
polynomial time, we could solve every problem in NP in polynomial
time.
That is, if an NP-complete problem is solvable in polynomial time,
then P=NP.
Since so many people have attempted without success to find
polynomial-time solutions to NP-complete problems, showing your
problem is NP-complete is equivalent to showing that a lot of smart
people have worked on your problem and found no polynomial-time
algorithm.
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